Surface passivation of silicon anodes is an appealing design strategy for the development of reliable, high-capacity lithium-ion batteries. However, the structural stability of the coating layer and its influence on the lithiation process remain largely unclear. Herein, we show that surface coating mediates the swelling dynamics and the fracture pattern during initial lithiation of crystalline silicon nanopillars. We choose conformally nickel coated silicon architectures as a model system. Experimental findings are interpreted based on a chemomechanical model. Markedly different swelling and fracture regimes have been identified, depending on the coating thickness and silicon nanopillar diameter. Nanopillars with relatively thin coating dis...
Silicon (Si)-based materials hold promise as the next-generation anodes for high-energy lithium (Li)...
Silicon is a promising anode material in lithium batteries due to its high specific capacity and low...
Lithiation of individual silicon nanoparticles was studied in real time with <i>in situ</i> transmis...
Surface passivation of silicon anodes is an appealing design strategy for the development of reliabl...
Addressing the stability challenges in silicon-‐based anode materials is necessary for achieving hi...
One of the key challenges of Si-based anodes for lithium ion batteries is the large volume change up...
One of the key challenges of Si-based anodes for lithium ion batteries is the large volume change up...
One of the key challenges of Si-based anodes for lithium ion batteries is the large volume change up...
One of the key challenges of Si-based anodes for lithium ion batteries is the large volume change up...
One of the key challenges of Si-based anodes for lithium ion batteries is the large volume change up...
Silicon (Si)-based materials hold promise as the next-generation anodes for high-energy lithium (Li)...
During the lithation of silicon anodes, the solid-state diffusion of lithium into LixSi follows the ...
Silicon (Si)-based materials hold promise as the next-generation anodes for high-energy lithium (Li)...
Silicon (Si)-based materials hold promise as the next-generation anodes for high-energy lithium (Li)...
Silicon (Si)-based materials hold promise as the next-generation anodes for high-energy lithium (Li)...
Silicon (Si)-based materials hold promise as the next-generation anodes for high-energy lithium (Li)...
Silicon is a promising anode material in lithium batteries due to its high specific capacity and low...
Lithiation of individual silicon nanoparticles was studied in real time with <i>in situ</i> transmis...
Surface passivation of silicon anodes is an appealing design strategy for the development of reliabl...
Addressing the stability challenges in silicon-‐based anode materials is necessary for achieving hi...
One of the key challenges of Si-based anodes for lithium ion batteries is the large volume change up...
One of the key challenges of Si-based anodes for lithium ion batteries is the large volume change up...
One of the key challenges of Si-based anodes for lithium ion batteries is the large volume change up...
One of the key challenges of Si-based anodes for lithium ion batteries is the large volume change up...
One of the key challenges of Si-based anodes for lithium ion batteries is the large volume change up...
Silicon (Si)-based materials hold promise as the next-generation anodes for high-energy lithium (Li)...
During the lithation of silicon anodes, the solid-state diffusion of lithium into LixSi follows the ...
Silicon (Si)-based materials hold promise as the next-generation anodes for high-energy lithium (Li)...
Silicon (Si)-based materials hold promise as the next-generation anodes for high-energy lithium (Li)...
Silicon (Si)-based materials hold promise as the next-generation anodes for high-energy lithium (Li)...
Silicon (Si)-based materials hold promise as the next-generation anodes for high-energy lithium (Li)...
Silicon is a promising anode material in lithium batteries due to its high specific capacity and low...
Lithiation of individual silicon nanoparticles was studied in real time with <i>in situ</i> transmis...